/src/CMake/Utilities/cmliblzma/liblzma/check/sha256.c
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1 | | // SPDX-License-Identifier: 0BSD |
2 | | |
3 | | /////////////////////////////////////////////////////////////////////////////// |
4 | | // |
5 | | /// \file sha256.c |
6 | | /// \brief SHA-256 |
7 | | // |
8 | | // The C code is based on the public domain SHA-256 code found from |
9 | | // Crypto++ Library 5.5.1 released in 2007: https://www.cryptopp.com/ |
10 | | // A few minor tweaks have been made in liblzma. |
11 | | // |
12 | | // Authors: Wei Dai |
13 | | // Lasse Collin |
14 | | // |
15 | | /////////////////////////////////////////////////////////////////////////////// |
16 | | |
17 | | #include "check.h" |
18 | | |
19 | | // Rotate a uint32_t. GCC can optimize this to a rotate instruction |
20 | | // at least on x86. |
21 | | static inline uint32_t |
22 | | rotr_32(uint32_t num, unsigned amount) |
23 | 103k | { |
24 | 103k | return (num >> amount) | (num << (32 - amount)); |
25 | 103k | } |
26 | | |
27 | | #define blk0(i) (W[i] = conv32be(data[i])) |
28 | | #define blk2(i) (W[i & 15] += s1(W[(i - 2) & 15]) + W[(i - 7) & 15] \ |
29 | | + s0(W[(i - 15) & 15])) |
30 | | |
31 | 11.5k | #define Ch(x, y, z) (z ^ (x & (y ^ z))) |
32 | 11.5k | #define Maj(x, y, z) ((x & (y ^ z)) + (y & z)) |
33 | | |
34 | 180 | #define a(i) T[(0 - i) & 7] |
35 | 180 | #define b(i) T[(1 - i) & 7] |
36 | 180 | #define c(i) T[(2 - i) & 7] |
37 | 11.7k | #define d(i) T[(3 - i) & 7] |
38 | 180 | #define e(i) T[(4 - i) & 7] |
39 | 180 | #define f(i) T[(5 - i) & 7] |
40 | 180 | #define g(i) T[(6 - i) & 7] |
41 | 34.7k | #define h(i) T[(7 - i) & 7] |
42 | | |
43 | | #define R(i, j, blk) \ |
44 | 11.5k | h(i) += S1(e(i)) + Ch(e(i), f(i), g(i)) + SHA256_K[i + j] + blk; \ |
45 | 11.5k | d(i) += h(i); \ |
46 | 11.5k | h(i) += S0(a(i)) + Maj(a(i), b(i), c(i)) |
47 | 2.88k | #define R0(i) R(i, 0, blk0(i)) |
48 | 8.64k | #define R2(i) R(i, j, blk2(i)) |
49 | | |
50 | 11.5k | #define S0(x) rotr_32(x ^ rotr_32(x ^ rotr_32(x, 9), 11), 2) |
51 | 11.5k | #define S1(x) rotr_32(x ^ rotr_32(x ^ rotr_32(x, 14), 5), 6) |
52 | | #define s0(x) (rotr_32(x ^ rotr_32(x, 11), 7) ^ (x >> 3)) |
53 | | #define s1(x) (rotr_32(x ^ rotr_32(x, 2), 17) ^ (x >> 10)) |
54 | | |
55 | | |
56 | | static const uint32_t SHA256_K[64] = { |
57 | | 0x428A2F98, 0x71374491, 0xB5C0FBCF, 0xE9B5DBA5, |
58 | | 0x3956C25B, 0x59F111F1, 0x923F82A4, 0xAB1C5ED5, |
59 | | 0xD807AA98, 0x12835B01, 0x243185BE, 0x550C7DC3, |
60 | | 0x72BE5D74, 0x80DEB1FE, 0x9BDC06A7, 0xC19BF174, |
61 | | 0xE49B69C1, 0xEFBE4786, 0x0FC19DC6, 0x240CA1CC, |
62 | | 0x2DE92C6F, 0x4A7484AA, 0x5CB0A9DC, 0x76F988DA, |
63 | | 0x983E5152, 0xA831C66D, 0xB00327C8, 0xBF597FC7, |
64 | | 0xC6E00BF3, 0xD5A79147, 0x06CA6351, 0x14292967, |
65 | | 0x27B70A85, 0x2E1B2138, 0x4D2C6DFC, 0x53380D13, |
66 | | 0x650A7354, 0x766A0ABB, 0x81C2C92E, 0x92722C85, |
67 | | 0xA2BFE8A1, 0xA81A664B, 0xC24B8B70, 0xC76C51A3, |
68 | | 0xD192E819, 0xD6990624, 0xF40E3585, 0x106AA070, |
69 | | 0x19A4C116, 0x1E376C08, 0x2748774C, 0x34B0BCB5, |
70 | | 0x391C0CB3, 0x4ED8AA4A, 0x5B9CCA4F, 0x682E6FF3, |
71 | | 0x748F82EE, 0x78A5636F, 0x84C87814, 0x8CC70208, |
72 | | 0x90BEFFFA, 0xA4506CEB, 0xBEF9A3F7, 0xC67178F2, |
73 | | }; |
74 | | |
75 | | |
76 | | static void |
77 | | transform(uint32_t state[8], const uint32_t data[16]) |
78 | 180 | { |
79 | 180 | uint32_t W[16]; |
80 | 180 | uint32_t T[8]; |
81 | | |
82 | | // Copy state[] to working vars. |
83 | 180 | memcpy(T, state, sizeof(T)); |
84 | | |
85 | | // The first 16 operations unrolled |
86 | 180 | R0( 0); R0( 1); R0( 2); R0( 3); |
87 | 180 | R0( 4); R0( 5); R0( 6); R0( 7); |
88 | 180 | R0( 8); R0( 9); R0(10); R0(11); |
89 | 180 | R0(12); R0(13); R0(14); R0(15); |
90 | | |
91 | | // The remaining 48 operations partially unrolled |
92 | 720 | for (unsigned int j = 16; j < 64; j += 16) { |
93 | 540 | R2( 0); R2( 1); R2( 2); R2( 3); |
94 | 540 | R2( 4); R2( 5); R2( 6); R2( 7); |
95 | 540 | R2( 8); R2( 9); R2(10); R2(11); |
96 | 540 | R2(12); R2(13); R2(14); R2(15); |
97 | 540 | } |
98 | | |
99 | | // Add the working vars back into state[]. |
100 | 180 | state[0] += a(0); |
101 | 180 | state[1] += b(0); |
102 | 180 | state[2] += c(0); |
103 | 180 | state[3] += d(0); |
104 | 180 | state[4] += e(0); |
105 | 180 | state[5] += f(0); |
106 | 180 | state[6] += g(0); |
107 | 180 | state[7] += h(0); |
108 | 180 | } |
109 | | |
110 | | |
111 | | static void |
112 | | process(lzma_check_state *check) |
113 | 180 | { |
114 | 180 | transform(check->state.sha256.state, check->buffer.u32); |
115 | 180 | return; |
116 | 180 | } |
117 | | |
118 | | |
119 | | extern void |
120 | | lzma_sha256_init(lzma_check_state *check) |
121 | 1.52k | { |
122 | 1.52k | static const uint32_t s[8] = { |
123 | 1.52k | 0x6A09E667, 0xBB67AE85, 0x3C6EF372, 0xA54FF53A, |
124 | 1.52k | 0x510E527F, 0x9B05688C, 0x1F83D9AB, 0x5BE0CD19, |
125 | 1.52k | }; |
126 | | |
127 | 1.52k | memcpy(check->state.sha256.state, s, sizeof(s)); |
128 | 1.52k | check->state.sha256.size = 0; |
129 | | |
130 | 1.52k | return; |
131 | 1.52k | } |
132 | | |
133 | | |
134 | | extern void |
135 | | lzma_sha256_update(const uint8_t *buf, size_t size, lzma_check_state *check) |
136 | 88 | { |
137 | | // Copy the input data into a properly aligned temporary buffer. |
138 | | // This way we can be called with arbitrarily sized buffers |
139 | | // (no need to be multiple of 64 bytes), and the code works also |
140 | | // on architectures that don't allow unaligned memory access. |
141 | 256 | while (size > 0) { |
142 | 168 | const size_t copy_start = check->state.sha256.size & 0x3F; |
143 | 168 | size_t copy_size = 64 - copy_start; |
144 | 168 | if (copy_size > size) |
145 | 88 | copy_size = size; |
146 | | |
147 | 168 | memcpy(check->buffer.u8 + copy_start, buf, copy_size); |
148 | | |
149 | 168 | buf += copy_size; |
150 | 168 | size -= copy_size; |
151 | 168 | check->state.sha256.size += copy_size; |
152 | | |
153 | 168 | if ((check->state.sha256.size & 0x3F) == 0) |
154 | 80 | process(check); |
155 | 168 | } |
156 | | |
157 | 88 | return; |
158 | 88 | } |
159 | | |
160 | | |
161 | | extern void |
162 | | lzma_sha256_finish(lzma_check_state *check) |
163 | 100 | { |
164 | | // Add padding as described in RFC 3174 (it describes SHA-1 but |
165 | | // the same padding style is used for SHA-256 too). |
166 | 100 | size_t pos = check->state.sha256.size & 0x3F; |
167 | 100 | check->buffer.u8[pos++] = 0x80; |
168 | | |
169 | 5.53k | while (pos != 64 - 8) { |
170 | 5.43k | if (pos == 64) { |
171 | 0 | process(check); |
172 | 0 | pos = 0; |
173 | 0 | } |
174 | | |
175 | 5.43k | check->buffer.u8[pos++] = 0x00; |
176 | 5.43k | } |
177 | | |
178 | | // Convert the message size from bytes to bits. |
179 | 100 | check->state.sha256.size *= 8; |
180 | | |
181 | 100 | check->buffer.u64[(64 - 8) / 8] = conv64be(check->state.sha256.size); |
182 | | |
183 | 100 | process(check); |
184 | | |
185 | 900 | for (size_t i = 0; i < 8; ++i) |
186 | 800 | check->buffer.u32[i] = conv32be(check->state.sha256.state[i]); |
187 | | |
188 | 100 | return; |
189 | 100 | } |